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Published on: January 30, 2014
Age-dependent Microglial Disease Phenotype Results in Functional Decline in Gut Macrophages
Estelle Spear Bishop1, Hong Namkoong1, Laure Aurelian2,3
1Division of Gastroenterology and Hepatology, Department of Medicine, Stanford University, Stanford, California.
Background And Aims:
Muscularis macrophages (MMs) are tissue-resident macrophages in the gut muscularis externa which play a supportive role to the enteric nervous system. We have previously shown that age-dependent MM alterations drive low-grade enteric nervous system inflammation, resulting in neuronal loss and disruption of gut motility. The current studies were designed to identify the MM genetic signature involved in these changes, with particular emphasis on comparison to genes in microglia, the central nervous system macrophage population involved in age-dependent cognitive decline.
Methods:
Young (3 months) and old (16-24 months) C57BL/6 mice and human tissue were studied. Immune cells from mouse small intestine, colon, and spinal cord and human colon were dissociated, immunophenotyped by flow cytometry, and examined for gene expression by single-cell RNA sequencing and quantitative real-time PCR. Phagocytosis was assessed by in vivo injections of pHrodo beads (Invitrogen). Macrophage counts were performed by immunostaining of muscularis whole mounts.
Results:
MMs from young and old mice express homeostatic microglial genes, including Gpr34, C1qc, Trem2, and P2ry12. An MM subpopulation that becomes more abundant with age assumes a geriatric state (GS) phenotype characterized by increased expression of disease-associated microglia genes including Cd9, Clec7a, Itgax (CD11c), Bhlhe40, Lgals3, IL-1β, and Trem2 and diminished phagocytic activity. Acquisition of the GS phenotype is associated with clearance of α-synuclein aggregates. Human MMs demonstrate a similar age-dependent acquisition of the GS phenotype associated with intracellular α-synuclein accumulation.
Conclusion:
MMs demonstrate age-dependent genetic changes that mirror the microglial disease-associated microglia phenotype and result in functional decline.
Insights
Aging muscularis macrophages (MMs) develop a geriatric state (GS) phenotype, mirroring microglia changes and leading to gut dysfunction. This age-related decline in gut macrophages impacts enteric nervous system health.
Area of Science:
- Immunology
- Neuroscience
- Gastroenterology
Background:
- Muscularis macrophages (MMs) support the enteric nervous system.
- Age-dependent alterations in MMs cause gut inflammation and motility issues.
- This study compares MM genetic signatures to microglia, the CNS macrophage population linked to cognitive decline.
Purpose of the Study:
- Identify the genetic signature of age-dependent changes in muscularis macrophages.
- Compare the aging MM genetic profile to that of microglia.
- Understand the functional consequences of MM aging on gut health.
Main Methods:
- Studied young and old mice and human colon tissue.
- Used flow cytometry and single-cell RNA sequencing for immune cell analysis.
- Assessed phagocytosis and quantified macrophages via immunostaining.
Main Results:
- Aging MMs express homeostatic microglial genes.
- A subpopulation of MMs adopts a geriatric state (GS) phenotype with increased disease-associated microglia genes.
- The GS phenotype correlates with reduced phagocytosis and alpha-synuclein aggregate clearance.
Conclusions:
- Muscularis macrophages undergo age-dependent genetic changes.
- These changes mirror the disease-associated microglia phenotype.
- MM aging leads to functional decline impacting gut health.
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